How do you use Part 1 of the fundamental theorem of calculus to find the derivative of the function #y= int (1+v^2)^10 dv# from sinx to cosx? Please help have been looking at problem for a hour can't figure out how to work it?

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Answer 1 · 2018-05-28T13:58:11

#d/(dx) [int_(sinx)^(cosx) (1+v^2)^10dv] = sinx +cosx -(1+cos^2x)^10 sinx -(1+sin^2x)^10cosx#

Let:

#F(u) = int_0^u (1+v^2)^10dv#

#(dF)/(du) = (1+u^2)^10-1#

Now:

# int_(sinx)^(cosx) (1+v^2)^10dv = F(cosx)-F(sinx)#

and using the linearity of the derivative and the chain rule:

#d/(dx) [int_(sinx)^(cosx) (1+v^2)^10dv] = F'(cosx) d/dx cosx - F'(sinx)d/dx sinx#

#d/(dx) [int_(sinx)^(cosx) (1+v^2)^10dv] = -((1+cos^2x)^10 -1)sinx -((1+sin^2x)^10 -1)cosx#

#d/(dx) [int_(sinx)^(cosx) (1+v^2)^10dv] = sinx +cosx -(1+cos^2x)^10 sinx -(1+sin^2x)^10cosx#

Answer 2 · 2018-05-28T14:05:44

See below

FTC, Part 1 states, broadly, that if:

then:

This can then be modified for an interval that includes a function #u = u(x)#, by using the chain rule:

#d/dx = d/(du) (du)/(dx) implies d/(dx) int _a^(u(x)) f(t)\ dt = f(u(x)) * u'(x)#

Then by manipulating the interval, you can get a complete result:

# int_(v(x))^(u(x)) f(t)\ dt = int_(0)^(u(x)) f(t)\ dt - int_(0)^(v(x)) f(t)\ dt #
#implies d/(dx) int _(v(x))^(u(x)) f(t)\ dt = f(u(x)) * u'(x) - f(v(x)) * v'(x) #

In this case, #v # is the dummy variable instead of #t#. Matters not.

#d/dx int_(sin x)^(cos x) (1+v^2)^10 dv#

# = (1+cos^2x)^10 * (- sin x) - (1+sin^2x)^10 * cos x#

....which might simplify a little